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128 - Dynamic Benchmarking, with Douwe Kiela

NLP Highlights

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How to Train Models in Multiple Rounds

In the adversarial NLI paper we start off with just a single instance of bird and then we collect some data. We train new models on this data that was collected with bird to make it even better but around this time Roberta was really found to be much better so we switched the second round to Roberta. Instead of having a single instance type in that round we're using a round robin ensemble which means that we're not actually like aggregating all the predictions of different Roberta models.

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